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Yellow to orange-reddish glass phosphors: Sm~(3+), Tb~(3+) and Sm~(3+)/Tb~(3+) in zinc tellurite-germanate glasses

机译:黄色至橙红色玻璃荧光粉:碲化锌锗酸盐玻璃中的Sm〜(3 +),Tb〜(3+)和Sm〜(3 +)/ Tb〜(3+)

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An optical spectroscopy analysis of TeO-GeO2-ZnO glass co-activating Sm3+/Tb3+ ions was carried out through Raman, photoluminescence spectra and decay time profiles as a function of Sm3+ concentration. According to the estimated CIE1931 chromaticity coordinates, the color of the emission can be adjusted from the yellow light region (0.4883, 0.4774), towards the reddish light region (0.5194,0.4144) by increasing the Sm3+ content from 1, 3, 5% mol, co-doped with 1% mol Tb3+ under co-excitation of Sm3+ and Tb3+ at 378 nm. The color temperatures are in the range of 1379-2804 K. Such photoluminescence is generated by the (4)G (5/2) -> H-4 (5/2), H-4 (7/2), H-4(9/2) emissions of Sm3+ in addition to the D-5(4) -> F-7(6,5,4,3) emissions of Tb3+; the single doped Sm3+ glass displayed an intense orange light. Meanwhile, co-doped Sm3+/Tb3+ glasses excited at 378 nm showed a significant reduction in Tb3+ emission, with a simultaneous increment in the reddish-orange emission of Sm3+, due to a non-radiative resonant energy transfer from Tb3+ to Sm3+. Decay time profile analysis of the Tb3+ emission as function of Sm3+ ion content suggests that an electric dipole dipole interaction into Tb3+ Sm3+ clusters might dominate in the energy transfer process, with an efficiency and probability of 0.22, 0.27, 038 and 122.8, 327.6, 522.7, respectively. (C) 2017 Elsevier B.V. All rights reserved.
机译:通过拉曼光谱,光致发光光谱和衰变时间曲线,根据Sm3 +浓度对TeO-GeO2-ZnO玻璃共活化Sm3 + / Tb3 +离子进行了光谱分析。根据估计的CIE1931色度坐标,可以通过将Sm3 +含量从1、3、5%mol增加到从黄光区域(0.4883,0.4774)向红光区域(0.5194,0.4144)调整发射的颜色在378 nm的Sm3 +和Tb3 +共同激发下,共掺杂1%mol Tb3 +。色温在1379-2804 K范围内。这种光致发光是由(4)G(5/2)-> H-4(5/2),H-4(7/2),H-除了D-5(4)-> F-7(6,5,4,3)排放的Tb3 +外,还排放4(9/2)Sm3 +;单个掺杂的Sm3 +玻璃显示强烈的橙色光。同时,由于从Tb3 +到Sm3 +的非辐射共振能量转移,在378 nm处激发的共掺杂Sm3 + / Tb3 +玻璃显示Tb3 +发射显着减少,同时Sm3 +的红橙色发射同时增加。 Tb3 +发射随Sm3 +离子含量变化的衰减时间曲线分析表明,电偶极子相互作用进入Tb3 + Sm3 +团簇可能在能量转移过程中占主导地位,效率和概率分别为0.22、0.27、038和122.8、327.6、522.7 , 分别。 (C)2017 Elsevier B.V.保留所有权利。

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